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Design of Pressure Vessel using COMPRESS – Material Selection as per ASME Section II Part A, B & D banner

Design of Pressure Vessel using COMPRESS – Material Selection as per ASME Section II Part A, B & D

Design of Pressure Vessel using COMPRESS – Material Selection as per ASME Section II Part A, B & D banner
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Design of Pressure Vessel using COMPRESS – Material Selection as per ASME Section II Part A, B & D

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5 hrs
-
English
558 views
Shanmugam V
Shanmugam VLead / Senior Mechanical Engineer/Static Equipment Engineer
  • 7-day money-back guarantee
  • Session recordings included
  • Certificate of completion
Volume pricing for groups of 5+

Why enroll

1. How elementary and advanced topics of Solid mechanics are applied in development of Pressure vessel codes and standards.
2. Theoretical background behind design code requirements which helps an engineer understand the strengths, weaknesses and applicability of the code requirements.
3. An insight into the newly introduced codes.
4. Bridging the gap between theoretical knowledge and code requirements
5. University students who want to take up career in static equipment engineering and wants to learn about the most widely used Industrial standard.
6. Experienced engineers who want to understand the background of code rules and requirements.

Is this course for you?

You should take this if

  • You work in Oil & Gas Upstream
  • You're a Mechanical Engineering / Metallurgy & Material Science professional
  • You prefer live, instructor-led training with Q&A

You should skip if

  • You need a different specialisation outside Mechanical Engineering
  • You need fully self-paced, on-demand content

Course details

This course will cover basic and advanced topics of Pressure Vessel Engineering Design and Material requirement to provide a robust understanding of the background theory behind technical requirements of Pressure Vessel codes and standards. This will serve as a refresher course on core and advanced topics of Pressure Vessel Engineering to understand technical background of design and analysis as per codes & standards.

This course covers all important aspects of Pressure Vessel Design, Fabrication and testing, which comprises of

• Design, Analysis and Engineering requirement for Pressure Vessel

• Metallurgy and Material Selection while designing Pressure vessel

• Fabrication prerequisite while Pressure Vessel engineering

• Heat Treatment requirement for Pressure Vessel

• Testing & Inspection essentials for Pressure Vessel Design

All of above topics are covered in different modules of this course hence we encourage you to enroll all modules to learn all major and critical areas of Pressure vessel engineering.

Classifications of Static Equipment Engineering is a specialized discipline of Mechanical Engineering which covers the design of static equipments like Pressure vessels (Process Columns, Drums, Reactors, Separators, Drain vessel), Heat exchangers (Shell and Tube, Plate and Frame, Plate and Shell, Air Coolers), Atmospheric Tanks (Low pressure and LPG Tanks), Flare Stack in chemical, petrochemical, or hydrocarbon facilities. We have different courses to cover above listed equipment & do participate in all courses.

Course suitable for

Key topics covered

This module talks about ASME Code. ASME Section II Part A, B & D standards & also various Lattice structures will be discussed so that the actual usage in industry can be understood. Chemical & mechanical properties of various types of steels will be covered at length. Anyone who goes through these details will be able to understand and implements the facts in live projects. Following topics are covered in this module

1. Material Selection as per ASME Section II Part A, B & D

a. Understanding code structure and tables

b. Material properties

c. Safety factors

Opportunities that await you!

Skills & tools you'll gain

COMPRESS

Career opportunities

Training details

This is a live course that has a scheduled start date.

COMPLETED

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Questions and Answers

A: The right choice protects against time-dependent damage at the worst credible metal temperature. Using 345°C ignores cumulative creep, interpolation has no code basis, and room-temperature stress with derating bypasses Section II methodology.

A: The correct logic screens brittle fracture risk using thickness–temperature curves. Assuming blanket qualification ignores thickness effects, separating Section II from VIII is artificial, and fixed temperature triggers oversimplify UCS rules.

A: The answer ties fracture timing, temperature, and test condition into one mechanism. Overpressure would show plastic deformation, hydrogen needs exposure time, and residual stress alone doesn't explain temperature sensitivity.

A: The correct estimate consumes CA linearly against corrosion rate. Inspection frequency doesn't change metal loss, assumed slowdown isn't justified, and recalculation doesn't restore lost thickness.